fix(moe): guard FP8 delegate activation params (#36275)
Signed-off-by: jikuixie <jikuixie@gmail.com> Co-authored-by: Mohammad Angkad <mohammad.angkad@radixark.ai> Co-authored-by: Mohammad Miadh Angkad <176301910+mmangkad@users.noreply.github.com> Co-authored-by: shyeh25 <206795756+shyeh25@users.noreply.github.com>
This commit is contained in:
co-authored by
Mohammad Angkad
Mohammad Miadh Angkad
shyeh25
parent
937af8538b
commit
27c36368b6
@@ -1085,6 +1085,9 @@ class Fp8MoEMethod(FusedMoEMethodBase):
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self.is_fp4_expert = self.quant_config.is_fp4_experts
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self.dequant_fp4_to_fp8 = self.quant_config.dequant_fp4_to_fp8
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self.with_bias = False
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# The MxFP4 wrapper methods borrow this instance for weight loading;
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# they never call create_moe_runner, so moe_runner_config is unset.
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self._owns_moe_runner = False
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if get_moe_runner_backend().is_cutlass():
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assert (
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cutlass_fp8_supported()
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@@ -2144,10 +2147,12 @@ class Fp8MoEMethod(FusedMoEMethodBase):
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align_fp8_moe_weights_for_flashinfer_trtllm(layer)
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# The runner backend is global, so it is also true for a borrowed delegate,
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# which has no moe_runner_config and whose kernel ignores these params.
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if (
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get_moe_runner_backend().is_flashinfer_trtllm()
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or get_moe_runner_backend().is_flashinfer_trtllm_routed()
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):
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) and self._owns_moe_runner:
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self._prepare_flashinfer_trtllm_activation_params(layer)
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if get_moe_runner_backend().is_hpc_ops():
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@@ -2325,6 +2330,7 @@ class Fp8MoEMethod(FusedMoEMethodBase):
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def create_moe_runner(
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self, layer: torch.nn.Module, moe_runner_config: MoeRunnerConfig
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):
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self._owns_moe_runner = False
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self.moe_runner_config = moe_runner_config
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moe_runner_backend = get_moe_runner_backend()
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@@ -2349,6 +2355,7 @@ class Fp8MoEMethod(FusedMoEMethodBase):
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or moe_runner_backend.is_hpc_ops()
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):
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self.runner = MoeRunner(moe_runner_backend, moe_runner_config)
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self._owns_moe_runner = True
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else:
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# TODO(cwan): refactor other backends
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pass
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@@ -0,0 +1,118 @@
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"""Unit tests for srt/layers/quantization/fp8.py MoE runner ownership.
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`--moe-runner-backend flashinfer_trtllm[_routed]` is a global setting, so
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`Fp8MoEMethod.process_weights_after_loading` must also require that this
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instance owns a MoeRunner before materializing the TRT-LLM SwiGLU params:
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the MxFP4 wrapper methods borrow an `Fp8MoEMethod` for weight loading only
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and never give it a `moe_runner_config` (issue #36264).
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"""
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import unittest
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from types import SimpleNamespace
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from unittest.mock import patch
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import torch
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from sglang.srt.layers.moe.moe_runner.base import MoeRunnerConfig
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from sglang.srt.layers.moe.utils import MoeRunnerBackend
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from sglang.srt.layers.quantization.fp8 import Fp8Config, Fp8MoEMethod
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from sglang.srt.runtime_context import get_flags
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from sglang.test.ci.ci_register import register_cpu_ci
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from sglang.test.test_utils import CustomTestCase
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register_cpu_ci(est_time=2, suite="base-a-test-cpu")
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_ACTIVATION_PARAMS = ("gemm1_alpha", "gemm1_beta", "gemm1_clamp_limit")
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class TestFp8MoERunnerOwnership(CustomTestCase):
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def setUp(self):
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moe = get_flags().moe
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self._saved_runner_backend = moe.runner_backend
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moe.runner_backend = MoeRunnerBackend.FLASHINFER_TRTLLM
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# _use_hip_int4 would divert this to the ROCm int4 branch, past the guard.
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hip_int4 = patch("sglang.srt.layers.quantization.fp8._use_hip_int4", False)
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hip_int4.start()
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self.addCleanup(hip_int4.stop)
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def tearDown(self):
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get_flags().moe.runner_backend = self._saved_runner_backend
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@staticmethod
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def _make_block_fp8_method() -> Fp8MoEMethod:
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# The real constructor's _owns_moe_runner default is what a delegate relies on.
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return Fp8MoEMethod(
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Fp8Config(is_checkpoint_fp8_serialized=True, weight_block_size=[128, 128])
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)
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@staticmethod
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def _make_layer(num_local_experts: int = 2) -> SimpleNamespace:
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return SimpleNamespace(
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num_local_experts=num_local_experts,
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w13_weight=torch.empty(num_local_experts, 4),
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)
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def _run_post_load(self, method: Fp8MoEMethod, layer: SimpleNamespace) -> None:
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with patch.object(method, "process_weights_after_loading_block_quant") as work:
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method.process_weights_after_loading(layer)
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work.assert_called_once_with(layer)
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def _assert_activation_params_absent(self, layer: SimpleNamespace) -> None:
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for name in _ACTIVATION_PARAMS:
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self.assertFalse(hasattr(layer, f"_flashinfer_trtllm_{name}"))
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def test_borrowed_delegate_skips_trtllm_activation_params(self):
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"""A method with no MoeRunner must not read moe_runner_config; doing so
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aborts weight loading whenever a TRT-LLM runner backend is selected."""
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method = self._make_block_fp8_method()
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layer = self._make_layer()
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self._run_post_load(method=method, layer=layer)
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self._assert_activation_params_absent(layer)
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def test_owning_method_prepares_trtllm_activation_params(self):
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"""The owning method must still materialize the params it consumes;
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apply() dereferences layer._flashinfer_trtllm_* on the TRT-LLM branch."""
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method = self._make_block_fp8_method()
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layer = self._make_layer()
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method.create_moe_runner(
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layer=layer,
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moe_runner_config=MoeRunnerConfig(
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gemm1_alpha=1.5, gemm1_beta=0.25, gemm1_clamp_limit=None
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),
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)
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self._run_post_load(method=method, layer=layer)
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self.assertTrue(
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torch.equal(
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layer._flashinfer_trtllm_gemm1_alpha,
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torch.full((2,), 1.5, dtype=torch.float32),
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)
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)
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self.assertTrue(
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torch.equal(
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layer._flashinfer_trtllm_gemm1_beta,
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torch.full((2,), 0.25, dtype=torch.float32),
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)
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)
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# None stays None: a zero-filled tensor would not mean "no clamp".
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self.assertIsNone(layer._flashinfer_trtllm_gemm1_clamp_limit)
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def test_owning_method_skips_params_on_non_trtllm_backend(self):
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"""Ownership alone must not materialize params no kernel consumes."""
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get_flags().moe.runner_backend = MoeRunnerBackend.TRITON
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method = self._make_block_fp8_method()
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layer = self._make_layer()
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method.create_moe_runner(
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layer=layer, moe_runner_config=MoeRunnerConfig(gemm1_alpha=1.5)
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)
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self._run_post_load(method=method, layer=layer)
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self._assert_activation_params_absent(layer)
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if __name__ == "__main__":
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unittest.main()
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